WO2024045481A1 - Équipement de traitement de vêtements - Google Patents

Équipement de traitement de vêtements Download PDF

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Publication number
WO2024045481A1
WO2024045481A1 PCT/CN2023/072666 CN2023072666W WO2024045481A1 WO 2024045481 A1 WO2024045481 A1 WO 2024045481A1 CN 2023072666 W CN2023072666 W CN 2023072666W WO 2024045481 A1 WO2024045481 A1 WO 2024045481A1
Authority
WO
WIPO (PCT)
Prior art keywords
housing
moisture
clamp
regeneration
shell
Prior art date
Application number
PCT/CN2023/072666
Other languages
English (en)
Chinese (zh)
Inventor
段传林
杨志敏
韩先山
黄積佰
刘通
齐杭
全刚
Original Assignee
深圳洛克创新科技有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from CN202222305979.6U external-priority patent/CN218540129U/zh
Priority claimed from PCT/CN2022/116242 external-priority patent/WO2023030394A1/fr
Application filed by 深圳洛克创新科技有限公司 filed Critical 深圳洛克创新科技有限公司
Publication of WO2024045481A1 publication Critical patent/WO2024045481A1/fr

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Classifications

    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F25/00Washing machines with receptacles, e.g. perforated, having a rotary movement, e.g. oscillatory movement, the receptacle serving both for washing and for centrifugally separating water from the laundry and having further drying means, e.g. using hot air 
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F37/00Details specific to washing machines covered by groups D06F21/00 - D06F25/00
    • D06F37/20Mountings, e.g. resilient mountings, for the rotary receptacle, motor, tub or casing; Preventing or damping vibrations
    • D06F37/22Mountings, e.g. resilient mountings, for the rotary receptacle, motor, tub or casing; Preventing or damping vibrations in machines with a receptacle rotating or oscillating about a horizontal axis
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F37/00Details specific to washing machines covered by groups D06F21/00 - D06F25/00
    • D06F37/30Driving arrangements 
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F58/00Domestic laundry dryers
    • D06F58/20General details of domestic laundry dryers 

Definitions

  • the present application relates to the technical field of household appliances, and in particular to a clothing processing equipment.
  • the purpose of this application is to provide a clothes processing equipment in order to overcome the shortcomings of the existing technology such as low moisture absorption efficiency, long drying time, high power consumption, and difficulty in controlling the temperature during the drying process.
  • An embodiment of the present disclosure provides a clothes processing device, including: a clothes storage space and a drying module;
  • the drying module includes a moisture-absorbing component;
  • the moisture-absorbing component includes a moisture-absorbing rotating disk, a peripheral shell of the moisture-absorbing rotating disk, and a circumferential shock absorber;
  • the outer peripheral shell includes an outer peripheral upper clamp shell and an outer peripheral lower clamp shell, and the outer peripheral shell is arranged around the outer periphery of the moisture-absorbing rotating disk;
  • the circumferential damping member is arranged on the outer periphery of the hygroscopic rotating disk or the inner peripheral wall of the outer peripheral shell;
  • a sealing ring is provided at the joint between the outer peripheral upper clamp housing and the outer peripheral lower clamp housing, or at the outer periphery of the separate outer peripheral upper clamp housing, or the separate outer peripheral lower clamp housing.
  • auxiliary rotating ring which is arranged on the outer periphery of the outer peripheral housing in parallel with the sealing ring.
  • outer periphery of the outer peripheral housing is also provided with driving teeth or belt grooves.
  • the outer ring diameter of the sealing ring is larger than the outer ring diameter of the auxiliary rotating ring.
  • auxiliary rotating ring is slightly protruding or flush with the driving teeth in the peripheral direction.
  • the drying module includes a housing that accommodates the moisture-absorbing rotating disk, and at least one flexible roller is provided in the housing.
  • the at least one flexible roller is in selective rolling contact with the auxiliary rotating ring.
  • the hygroscopic rotating disk is cylindrical, with a thickness of 10-100mm and a diameter of 40-500mm.
  • the moisture-absorbing rotating disk also includes a central clamp and a central end face shock absorber.
  • the central clamp includes an upper central clamp and a lower central clamp.
  • a first hole is opened in the center of the moisture-absorbing rotating disk
  • a second hole is opened in the upper center clamp
  • a third hole is opened in the lower center clamp
  • the upper central clamp and the lower central clamp pass through the first hole. , clamp and fix the moisture-absorbing rotating disk.
  • An embodiment of the present disclosure also provides a clothes processing device, including a drying device and a clothes storage space,
  • the drying device includes:
  • It also includes a center clamp of the hygroscopic rotating disc, the center clamp has a certain diameter, and the housing is provided with a clamp piece accommodating portion that matches the center clamp piece;
  • the at least one partition is directed toward the clamp member receiving portion and not toward the rotating shaft.
  • the housing includes a first housing and a second housing, the first housing is provided with at least a first partition, and the second housing is provided with at least a second partition; At least one first partition and the at least one second partition are arranged opposite to divide the space formed by connecting the first housing and the second housing into at least a relatively isolated first space and a second space. space.
  • clamp piece accommodating portion has a circular outline, and the partition is tangent to the circular outline of the clamp piece accommodating portion.
  • An embodiment of the present disclosure also provides a clothes processing device, including a clothes storage space and a drying module;
  • the drying module includes a hygroscopic component and a shell for accommodating the hygroscopic component;
  • the hygroscopic member includes a hygroscopic rotating disc
  • the moisture-absorbing member is arranged substantially horizontally; the housing includes at least one airflow inlet and at least one airflow outlet; from the perspective of the overall flow direction of the airflow, the airflow direction at the at least one airflow inlet, and/or, the at least one The airflow direction at the airflow outlet is generally parallel to at least one surface of the moisture-absorbing rotating disk.
  • the housing includes a first housing and a second housing, the air flow inlet is provided on the first housing, and the air flow outlet is provided on the second housing.
  • the moisture-absorbing member is horizontally disposed above or below the clothing accommodating space.
  • the air flow at the at least one air flow inlet and the air flow at the at least one air flow outlet are approximately Parallel to the two surfaces of the moisture-absorbing rotating disk.
  • a circulation fan which is arranged close to the air flow inlet.
  • it also includes a regeneration fan, which is arranged adjacent to the circulation fan.
  • the drying module also includes a condensation module, which is disposed adjacent to the regeneration fan.
  • condensation module the regeneration fan and the circulation fan are all located on the side of the moisture absorption rotating disk adjacent to the air flow inlet or air flow outlet.
  • the housing further includes a regeneration air inlet and a regeneration air outlet, and at least one air flow direction at the regeneration air inlet and the regeneration air outlet is substantially parallel to the at least one surface of the moisture-absorbing rotating disk as a whole.
  • the airflow direction in the airflow channel is changed to a direction that is substantially parallel to at least one surface of the moisture-absorbing rotating disk.
  • An embodiment of the present disclosure also provides a clothes processing device, which at least includes a clothes storage space and a drying module;
  • the drying module at least includes:
  • Housing including airflow inlet and airflow outlet
  • a moisture-absorbing rotating disc is housed in the housing, and the moisture-absorbing rotating disc includes a first surface and a second surface that are parallel to each other;
  • the moisture-absorbing rotating disk is arranged substantially horizontally, and under the action of the circulation fan, the airflow enters the space on at least one side of the moisture-absorbing rotating disk from the outer peripheral side of the housing.
  • the housing includes a first housing and a second housing, the air flow inlet is provided on the first housing, the air flow outlet is provided on the second housing, and the air flow flows from the The airflow inlet enters the housing and passes through the moisture-absorbing rotating disk, and then flows out of the housing from the airflow outlet.
  • An embodiment of the present disclosure also provides a clothes processing device, which at least includes a clothes storage space and a drying module;
  • the drying module at least includes:
  • Shell including a circulating air flow inlet and a circulating air flow outlet;
  • a moisture-absorbing rotating disc is housed in the housing, and the moisture-absorbing rotating disc includes a first surface and a second surface that are parallel to each other;
  • a circulation fan drives airflow to flow between the clothing storage space and the housing
  • the first surface is connected to the circulating air flow inlet of the housing, and the circulating air flow inlet is connected to the air outlet of the clothes accommodation space;
  • the second surface is connected to the circulating air flow outlet of the housing, so The circulating air flow outlet is connected with the air inlet of the clothes accommodating space; at least one normal line of the curved surface or plane where the circulating air flow inlet is located is substantially parallel to the first surface, and/or; the curved surface where the circulating air flow outlet is located or At least one normal to the plane is generally parallel to the second surface.
  • the housing includes a first housing and a second housing, the air flow inlet is provided on the first housing, and the air flow outlet is provided on the second housing.
  • An embodiment of the present disclosure also provides a clothes processing device, including a clothes storage space and a drying module;
  • the drying module includes:
  • a hygroscopic member that rotates around a rotation axis under the action of a driving mechanism
  • a shell for at least partially housing the absorbent member
  • At least one partition disposed on the housing, divides the inside of the housing into at least a first space and a second space;
  • a circulation fan fluidly connected to the first space
  • a regeneration fan fluidly connected to the second space
  • the projected area of the second space is less than or equal to the projected area of the first space
  • the circulation fan and the regeneration fan are both located on the same semicircular side of the moisture absorption component.
  • the drying module also includes a condensation module, and the main body of the condensation module is also located on the same semicircular side.
  • the housing includes a circulating air flow inlet and a circulating air flow outlet connected to the first space, and at least part of the circulating air flow inlet and at least part of the circulating air flow outlet are located on the same semicircular side.
  • the housing includes a regeneration gas inlet and a regeneration gas outflow connected to the second space, and at least part of the regeneration gas inlet and at least part of the regeneration gas outflow are located on the same semicircular side.
  • the housing includes a first housing and a second housing, the first housing is provided with at least a first partition, and the second housing is provided with at least a second partition.
  • the second partition and the first partition jointly divide the space where the hygroscopic component is located into two.
  • it also includes a hygroscopic rotating disk driving motor, which is arranged on the other semicircular side.
  • An embodiment of the present disclosure also provides a clothes processing device, including a clothes storage space and a drying module;
  • the drying module includes:
  • the drying module also includes: a circulation fan, a regeneration fan, a moisture absorption component and a condenser;
  • the circulation fan and the regeneration fan are arranged close to the regeneration area; the rotation axis of the moisture absorption member is substantially parallel to the rotation axis of the circulation fan and the regeneration fan.
  • the circulation fan and/or the regeneration fan When viewed in a plane direction perpendicular to the rotation axis of the moisture-absorbing member, the circulation fan and/or the regeneration fan The rotation axis is located outside the projection range of the absorbent member.
  • the regeneration fan is arranged between the circulation fan and the condensation module.
  • An embodiment of the present disclosure also provides a clothes processing device, including a clothes storage space and a drying module;
  • the drying module includes:
  • the drying module further includes a housing, the moisture-absorbing member is accommodated in the housing, and the housing includes at least one airflow inlet and at least one airflow outlet;
  • the housing further includes at least two partitions that divide the internal space of the housing into at least a moisture absorption area and a regeneration area;
  • the air flow inlet is provided at a position on one side of the moisture absorption area close to the regeneration area, and the air flow outlet is provided at a position far away from the air flow inlet and close to the other side of the regeneration area;
  • the rotation direction of the moisture-absorbing member is to pass through the regeneration area, the air flow outlet corresponding area, and the air flow inlet corresponding area in order.
  • the regeneration area includes a regeneration gas inlet and a regeneration gas outlet.
  • regeneration gas flow inlet is disposed adjacent to the gas flow inlet.
  • the regeneration air outlet is disposed adjacent to the air inlet.
  • the regeneration air outlet is disposed adjacent to the air outlet.
  • regeneration gas flow inlet is disposed adjacent to the gas flow outlet.
  • the shell includes a first shell and a second shell, and the first shell and the second shell form a receiving space for installing the hygroscopic component.
  • At least one first partition is provided on the first housing
  • at least one second partition is provided on the second housing
  • the first housing and the second housing are fixedly connected.
  • at least one of the second partitions and at least one of the first partitions jointly divide the space where the moisture absorption component is located into at least a first space and a second space to form a moisture absorption area and a regeneration area.
  • volume of the first space is greater than the volume of the second space.
  • At least one third partition is provided in the hygroscopic area of the first shell for dividing the space formed by the first shell and the hygroscopic component into at least two parts.
  • An embodiment of the present disclosure also provides a clothes processing device, including a drying module and a clothes storage space,
  • the drying module includes:
  • a hygroscopic rotating disc the hygroscopic rotating disc includes a first surface and a second surface that are parallel to each other;
  • a housing used to accommodate the moisture-absorbing rotating disk
  • the housing includes a first housing and a second housing arranged oppositely; the first housing and/or the second housing are provided with At least one partition for dividing the internal space of the housing into at least a first space and a second space;
  • the first housing is provided with at least one circulating air flow inlet, which forms the air flow inlet of the first space;
  • the second housing is provided with at least one circulating air flow outlet, which forms the air flow outlet of the first space;
  • the circulating air flow inlet and the circulating air flow outlet are respectively arranged adjacent to the second space and located on both sides of the second space.
  • the projected area of the first space is greater than or equal to the projected area of the second space.
  • the airflow flows in from the circulating airflow inlet and at least partially passes through the moisture absorption rotating disk, and flows out of the first space from the circulating airflow outlet.
  • the circulating air flow inlet is connected to the air outlet of the clothes accommodating space, and the circulating air flow outlet is connected to the air inlet of the clothes accommodating space.
  • the second space of the housing at least includes a regeneration gas inlet and a regeneration gas outlet.
  • regeneration air inlet and the regeneration air outlet are provided on different sides of the moisture absorption rotating disk.
  • the airflow in the second space flows in from the regeneration air inlet, passes through the moisture absorption rotating disk, and then flows out from the secondary regeneration air outlet.
  • the directions of airflow passing through the moisture-absorbing rotating disc in the first space and the second space are opposite.
  • the drying module includes a condensation component, and the airflow flowing out from the regeneration air outlet enters the condensation component.
  • the drying module includes a regeneration fan, and the regeneration fan generates air flow flowing through the second space.
  • An embodiment of the present disclosure also provides a clothes processing device, including a drying module and a clothes storage space,
  • the drying module includes:
  • a shell for housing at least part of said absorbent member
  • the shell at least includes a first space and a second space; when the shell accommodates the hygroscopic component, the first space and the second space are relatively isolated and sealed to form a relatively isolated hygroscopic area and a regeneration area. ;
  • the housing at least further includes a third space, the third space is at least used to accommodate the driving member and/or the transmission member, the first space is connected with the third space, and together form a sealed space.
  • the shell at least includes a first shell and a second shell, and the first shell and the second shell form a receiving space for installing the moisture-absorbing member.
  • the driving component is a motor, which is placed outside the third space.
  • the transmission component is a reduction mechanism, which is placed in the third space.
  • first housing and the second housing are sealingly connected.
  • one of the first housing and the second housing is provided with a groove, and the other is provided with a protrusion, and the protrusion forms a sealing connection with the groove.
  • a sealing ring is provided in the groove.
  • the driving mechanism is arranged outside the third space and is connected to the transmission mechanism through a transmission shaft.
  • first housing is provided with at least one first partition
  • second housing is provided with at least one second partition
  • the second partition and the first partition jointly divide the space where the hygroscopic component is located into at least two relatively isolated spaces.
  • the first space and the second space form relatively isolated hygroscopic areas and regeneration areas.
  • An embodiment of the present disclosure also provides a clothes processing device, including: a clothes storage space and a drying module;
  • the drying module includes a hygroscopic component
  • the moisture-absorbing member rotates driven by a motor
  • the hygroscopic member includes a cylindrical hygroscopic rotary disk, the ratio of thickness to diameter of the hygroscopic rotary disk is 1:20-1:5.
  • the thickness of the hygroscopic rotating disk is 10-100mm, preferably 25mm.
  • the diameter of the hygroscopic rotating disk is 40-500mm, preferably 320mm.
  • the drying module includes a shell, the moisture-absorbing member is accommodated in the shell, and the shell includes at least one airflow inlet and at least one airflow outlet.
  • the airflow flows in from the at least one airflow inlet of the housing, passes through the moisture absorption rotating disk, and then flows out from the at least one airflow outlet.
  • 1-3 respectively show a perspective view, a rear view and a top view of an integrated washing and drying machine according to some embodiments of the present disclosure
  • Figures 4 and 5 respectively show a top view and a perspective view of the drying module in Figures 2 and 3;
  • Figure 6 shows the structural diagram of the lower shell of the drying module
  • Figures 7 to 9 show the top view, bottom view and exploded view of the circulation fan respectively;
  • Figure 10 shows a schematic diagram of the cooperation between the circulation fan and the lower shell of the drying module
  • Figure 11 shows a schematic diagram of the connection method between the flexible tube and the lower shell
  • Figure 12 shows a schematic diagram of the flow direction of the circulating air flow
  • Figures 13 and 14 respectively show an exploded view and a three-dimensional view of the hygroscopic component after assembly
  • Figure 15 shows a top view of the lower shell
  • Figures 16 and 17 respectively show exploded views of the lower shell for installing the hygroscopic component and the second hygroscopic component shell;
  • Figure 18 shows an exploded view of the installation of the lower shell, the second hygroscopic component shell, and the hygroscopic component;
  • Figure 19 shows a schematic diagram of the fixing method of the integrated lower shell and the second moisture-absorbing member shell
  • Figure 20 shows a schematic diagram of the flow direction of the dehumidification airflow
  • Figures 21 and 22 respectively show an exploded view and a perspective view of the relevant structures of the heating assembly and the regeneration fan;
  • Figures 23 and 24 respectively show a perspective view and an exploded view of the first connecting member
  • Figures 25 and 26 respectively show a perspective view and an exploded view of the second connecting member
  • Figure 27 shows a schematic diagram of the installation position of the heating assembly on the second housing
  • Figures 28-30 respectively show a perspective view of the heating assembly, a schematic view of the mesh plate, and a bottom view of the heating assembly;
  • Figure 31 shows a schematic diagram of the fixing method of the condenser and the first shell
  • Figure 32 shows a cross-sectional view of the condenser housing.
  • the clothes treatment device is a device with a clothes drying function.
  • the clothes processing equipment may be, for example, a dryer that only has a clothes drying function, or it may be an integrated washing and drying machine that has both a clothes washing function and a clothes drying function.
  • the absorbent member is provided with a hygroscopic agent.
  • the hygroscopic agent can be, for example, zeolite (molecular sieve), alkali metal aluminosilicate (13X molecular sieve), lithium chloride, silica gel, modified silica gel, activated alumina and other solid hygroscopic agents.
  • the hygroscopic member can be provided with a solid hygroscopic material.
  • the hygroscopic agent may be a liquid hygroscopic agent such as a lithium chloride solution or a lithium bromide solution.
  • the absorbent member may be a container containing liquid absorbent.
  • the drying module further includes a dehumidification component.
  • the dehumidification component is arranged on the regeneration channel and is used to desorb the moisture absorbed by the hygroscopic agent.
  • the dehumidification component may be, for example, a heating component, an ultrasonic generator, a microwave generator, etc.
  • the specific structure of the dehumidification component can be determined according to the moisture absorbent.
  • a heating component can be used to desorb the moisture in the hygroscopic agent.
  • the heating component may include, for example, electric heating wires, PTC heaters and other elements with heating functions.
  • solid hygroscopic agents with strong thermal stability such as silica gel, because they are not sensitive to temperature, the effect of using a heating component to desorb moisture is not very good.
  • a heating element can be used to desorb the moisture they absorb.
  • a semipermeable membrane can be installed in the container holding the liquid hygroscopic agent, which only allows water to pass through, thereby preventing the liquid hygroscopic agent from evaporating along with the water during the regeneration process and ensuring the concentration and hygroscopic effect of the liquid hygroscopic agent. .
  • a drive mechanism is used to move the absorbent member relative to the absorbent channel and the regeneration channel.
  • the driving mechanism may be, for example, a driving motor (ie, an electric driver), a pneumatic driver, a hydraulic driver, etc.
  • the absorbent member may be provided in different shapes, such as a circular absorbent rotating disc, a strip-shaped absorbent belt, a container with openings of different shapes, etc.
  • the specific manner in which the absorbent member moves relative to the absorbent and regeneration channels may be determined by the shape of the absorbent member.
  • the driving mechanism can drive the moisture absorption rotating disc to rotate relative to the moisture absorption channel and the regeneration channel, or drive the moisture absorption channel and the regeneration channel to rotate relative to the moisture absorption rotating disc.
  • the driving mechanism can drive the moisture-absorbing belt to make reciprocating linear motion (i.e., translation) relative to the moisture-absorbing channel and the regeneration channel, or drive the moisture-absorbing channel and the regeneration channel to make reciprocating linear motion relative to the moisture-absorbing belt.
  • the driving mechanism can drive the container to rotate/make linear motion relative to the moisture absorption channel and the regeneration channel, or drive the moisture absorption channel and the regeneration channel to rotate/make linear motion relative to the container.
  • two or more hygroscopic members may be provided, and the driving mechanism is used to drive different hygroscopic members (or drive hygroscopic channels and regeneration channels) so that different hygroscopic members are alternately located on the hygroscopic channels and regeneration channels.
  • the clothes drying solution of the embodiment of the present disclosure will be described in detail below, taking the clothes processing equipment as an all-in-one washing and drying machine, the moisture-absorbing component as a moisture-absorbing rotating disk, the dehumidifying component as a heating component, and the driving mechanism as a driving motor. It should be understood that the clothes drying solutions of the embodiments of the present disclosure are also applicable to the clothes treatment equipment, moisture absorbing members, dehumidification components and driving mechanisms of other embodiments.
  • 1-3 respectively show a perspective view, a rear view and a top view of an integrated washing and drying machine according to some embodiments of the present disclosure
  • Figures 4 and 5 respectively show a top view and a perspective view of the drying module in Figures 2-3.
  • the washing and drying machine 1000 includes a clothes storage space (drum 1100 ) for accommodating clothes to be processed ("processing" here may be washing processing or drying processing).
  • the drum 1100 includes an inner cylinder and an outer cylinder.
  • the inner cylinder is used to place the clothes to be processed and rotates under the action of a driving mechanism, while the outer cylinder is fixed relative to the body by hanging.
  • a door 1110 is provided on the housing 1200 of the integrated washing and drying machine 1000 at a position corresponding to the drum 1100 .
  • the door body 1110 is pivotally connected to the housing 1200. The opening and closing of the door 1110 can be controlled manually by the user or with the help of an electronic controller.
  • the washing and drying machine 1000 includes a drying module 2000 for drying the clothes in the drum 1100 .
  • the drying module 2000 is located above the drum 1100.
  • the drying module 2000 includes a moisture absorption channel, a regeneration channel, a circulation fan 2100, a moisture absorption component 2200, a driving mechanism 2300 and a regeneration fan 2400.
  • the first air inlet 2901 of the moisture absorption channel is connected with the air outlet duct 1300 of the drum 1100.
  • the first air outlet 2902 of the moisture absorption channel is connected to the air inlet duct of the drum 1100.
  • the first air outlet 2902 is connected to the air inlet duct of the drum 1100 (not shown in Figure 5) through the connector 1400.
  • the circulation fan 2100 is located in the moisture absorption channel and is used to form a circulating air flow in the drum 1100 and the moisture absorption channel.
  • the regeneration fan 2400 is located in the regeneration channel and is used to form a dehumidifying airflow in the regeneration channel.
  • a part of the moisture absorption member 2200 is located on the moisture absorption channel, and the other part is located on the regeneration channel, so that the circulating air flow in the moisture absorption channel and the moisture discharge air flow in the regeneration channel both flow through the moisture absorption member 2200.
  • the drive mechanism 2300 may be, for example, a drive motor for moving (eg, rotating) the absorbent member 2200 relative to the absorbent channel and the regeneration channel. During the rotation of the moisture absorbing member 2200, moisture in the circulating air flow is absorbed, and the moisture is discharged through the moisture discharge air flow.
  • the absorbent member 2200 may include an absorbent rotating disc 2201.
  • the hygroscopic rotating disk 2201 is provided with a hygroscopic agent for absorbing moisture.
  • the hygroscopic agent can be, for example, zeolite (molecular sieve), alkali metal aluminosilicate (13X molecular sieve), lithium chloride, silica gel, modified silica gel, activated alumina, etc.
  • the driving mechanism 2300 is used to drive the moisture absorption rotating disk 2201 to rotate relative to the moisture absorption channel and the regeneration channel.
  • the moisture absorption rotating disk 2201 flows through the circulating air flow and the moisture removal air flow at the same time.
  • the area on the moisture absorption rotating disk 2201 that the circulating air flow flows through is the moisture absorption area
  • the area that the moisture removal air flow flows through is the regeneration area.
  • the drying module 2000 may further include a heating component 2500 and a condenser 2600 disposed on the regeneration channel.
  • the heating assembly 2500 covers the regeneration area of the hygroscopic member 2200 (hygroscopic rotating disc 2201) and is used to heat the regeneration area of the hygroscopic member 2200 (hygroscopic rotating disc 2201) to desorb the moisture absorbed by the hygroscopic member 2200 (hygroscopic rotating disc 2201).
  • Moisture The condenser 2600 is used to condense the moisture exhaust air flow flowing out from the regeneration area of the hygroscopic member 2200 to dry the moisture exhaust air flow.
  • the condenser 2600 includes a water inlet 2610 and a water outlet 2620, As shown in Figure 31.
  • the drying module 2000 further includes a housing.
  • the housing includes a lower shell 2700 and an upper shell (if the drying device 2000 adopts other arrangements, the lower shell can be defined as the first shell and the upper shell as the second shell. That is: “upper” is defined as “second” and “lower” is defined as “first”).
  • the lower shell 2700 and the upper shell cover and fix the various components of the drying module 2000, so that the drying module 2000 forms an integral module.
  • the upper shell and the lower shell 2700 of the drying module 2000 may be separate shells corresponding to a single component of the drying module 2000, or may be multiple components corresponding to the drying module 2000. integrated housing.
  • the lower shell 2700 of the drying module 2000 is an integrated shell
  • FIG. 6 further shows a structural diagram of the integrated lower shell 2700 .
  • the lower shell 2700 is provided with an installation portion 2710 (first circulation fan housing) for installing the circulation fan 2100, an installation portion 2720 (first moisture absorption component housing) for installing the moisture absorption member 2200,
  • the upper shell of the drying module 2000 is a separate shell, including an upper shell 2810 (second circulation fan shell) for installing the circulation fan 2100, and an upper shell 2820 (the second moisture absorption component) for installing the moisture absorption component 2200. shell), an upper shell 2830 (second condenser shell) for installing the condenser 2600, etc.
  • the lower shell 2700 of the drying module 2000 is provided with a plurality of fourth mounting portions 2701, and the second moisture-absorbing member housing 2820 is provided with a fifth mounting portion 2801.
  • the fourth installation part 2701 and the fifth installation part 2801 are overlapped and fixed on the housing 1200 of the washing and drying machine 1000, thereby realizing the installation and fixation of the entire drying module 2000.
  • the first air inlet 2901 of the moisture absorption channel of the drying module 2000 can be connected to the air outlet duct 1300 of the drum 1100 through a flexible tube (such as a corrugated hose) 2903.
  • the air outlet duct 1300 may be provided with a filter (such as a filter screen) for filtering debris and lint.
  • the connecting piece 1400 can also be connected to the air inlet duct of the drum 1100 through a flexible tube (not shown in Figures 2 and 5). This can prevent the vibration of the drum 1100 from being transmitted to the drying module 2000 (especially the hygroscopic component 2200), thereby improving the stability and reliability of the drying module 2000.
  • the first hygroscopic member housing 2720 and the second hygroscopic member housing 2820 form a receiving space for installing the hygroscopic member 2200.
  • the first absorbent member housing 2720 is provided with a first partition 2725
  • the second absorbent member housing 2820 is provided with a second partition 2822.
  • the first partition 2725 and the second partition 2822 can separate the moisture absorption rotating disk 2201 into the moisture absorption area 2907 and the regeneration area 2908.
  • the volume of the first space is greater than the volume of the second space.
  • the shell includes a first absorbent member housing 2720 and a second absorbent member housing 2820 that accommodates the moisture absorption and discharge rotating disk 2201.
  • Two separation ribs are provided on the first absorbent member housing 2720, as shown in Figure 16
  • the first partition 2725-1 and the first partition 2725-2 shown are provided with two partition ribs on the second absorbent member shell, such as the second partition 2822-1 and the second partition in Figure 17 Item 2822-2.
  • the center of the first moisture-absorbing member housing 2720 is provided with a short shaft 2721 and a receiving portion for installing the short shaft 2721.
  • a dividing rib 2725-1 of the first moisture-absorbing member housing 2720 may be provided to extend from the inner peripheral wall of the housing to the housing. Housing Department.
  • Another dividing rib 2725-2 of the first absorbent member shell 2720 may be provided to extend from another position of the inner peripheral wall of the shell to the shell accommodating portion. At least two separation ribs do not intersect with the short axis 2721, so that the internal space formed by the butt joint of the first absorbent member shell 2720 and the second absorbent member shell 2820 can be divided into two spaces, namely the first space and the second space. , or the moisture absorption space and the regeneration space, or the moisture absorption area and the regeneration area.
  • the accommodating part is annular, and at least two separation ribs are arranged tangent to the outer periphery of the annular accommodating part.
  • the first space and the second space are relatively isolated and sealed, which can be understood as: the air flow exchange between the first space and the second space is restricted through certain sealing measures, and the free circulation of air flow in the first space and the second space is avoided as much as possible.
  • the first partition 2725 and the second partition 2822 are aligned to form a first space and a second space. Gas outside the first space (corresponding to the hygroscopic area 2907) cannot freely enter the first space at will. Gas outside the second space (corresponding to the regeneration area 2908) cannot enter the second space at will.
  • the first moisture-absorbing member housing 2720 has a circulating airflow inlet 2702.
  • the circulating airflow inlet 2702 is disposed at a position close to the regeneration area of the moisture absorption area.
  • the circulating airflow inlet 2702 is located At least one normal line of the curved surface or plane is substantially parallel to at least one surface of the hygroscopic rotating disc 2201.
  • the second moisture-absorbing member housing 2820 has a circulating airflow outlet 2902, which is disposed away from the circulating airflow inlet 2702 and close to the other side of the regeneration area. At least one normal line of the curved surface or plane where the circulating air flow outlet 2902 is located is parallel to at least one surface of the moisture absorption rotating disk 2201.
  • the airflow originating from the clothes accommodating space enters the first space from the circulating airflow inlet 2702. After passing through the moisture-absorbing rotating disk, the airflow flows out from the circulating airflow outlet 2902.
  • the circulation fan 2100 is disposed on the side close to the regeneration area can be understood as: the circulation fan and the regeneration area are located on the same side of a diameter D0 of the moisture absorption rotating disk.
  • the circulation fan 2100 can be disposed near the circulating air flow inlet 2702; for another example, the circulating fan 2100 can also be disposed near the circulating air flow outlet 2902.
  • the circulation fan 2100 is arranged near the circulation airflow inlet 2702.
  • the circulation fan includes a motor and fan blades. wheel.
  • the airflow originating from the clothing storage space passes through the circulation fan 2100, and under the action of the circulation fan, the airflow in the airflow channel enters the first space from the circulation airflow inlet 2702 on the outer peripheral side of the first moisture absorbing member housing 2720.
  • the moisture absorption rotating disc 2201 is arranged approximately horizontally.
  • the airflow enters the space on the lower side and/or the upper side of the moisture absorption rotating disc from the outer peripheral side of the housing.
  • the air flow direction at the at least one air flow inlet is generally parallel to the upper surface or lower surface of the moisture absorption rotating disk 2201.
  • the circulation fan 2100 may also be disposed near the circulation airflow outlet 2902, that is, the circulation fan 2100 is disposed between the circulation airflow outlet 2902 and the air inlet of the clothes accommodation space. Through the action of the circulating fan, the airflow direction at the circulating airflow outlet 2902 is substantially parallel to the upper surface or lower surface of the moisture-absorbing rotating disk 2201.
  • multiple circulating air flow inlets 2702 and multiple circulating air flow outlets 2902 can be provided; the circulating air flow inlets 2702 can also be provided on the second moisture-absorbing member housing 2820, and the corresponding circulating air flow outlets 2902 are provided.
  • the circulating air flow inlet 2702 and the circulating air flow outlet 2902 are respectively disposed adjacent to the second space and located on both sides of the second space, that is, the regeneration area 2908.
  • the second space where the regeneration area 2908 is located includes a regeneration gas flow inlet and a regeneration gas flow outlet.
  • the regeneration gas flow inlet is located adjacent to the circulating air flow inlet 2702 or the circulating air flow outlet 2902.
  • the regeneration gas flow outlet is adjacent to the circulating air flow.
  • An inlet 2702 or the circulating air flow outlet 2902 is provided. The airflow flowing out from the regeneration air outlet enters the condenser 2600. After the airflow entering the condensation assembly 2600 passes through the regeneration fan 2400, it flows into the second space again through the regeneration air inlet.
  • the air flow directions passing through the moisture absorption rotating disk 2201 in the first space and the second space are opposite.
  • the moisture-absorbing rotating disc 2201 placed horizontally as an example, when the air flow direction in the moisture-absorbing area 2907 is from below through the moisture-absorbing rotating disc 2201 and into the upper space, the air flow direction in the regeneration area 2908 is from above the moisture-absorbing rotating disc 2201 through the moisture-absorbing rotating disc 2201 Enter the space below.
  • the air flow direction in the regeneration area 2908 is from above the moisture-absorbing rotating disc 2201 through the moisture-absorbing rotating disc 2201 Enter the space below.
  • the air flow direction in the regeneration area 2908 is from above the moisture-absorbing rotating disc 2201 through the moisture-absorbing rotating disc 2201 Enter the space below.
  • the third moisture absorbing member housing 2720 and/or the second moisture absorbing member housing 2820 can also be adjusted.
  • the direction of the airflow passing through the moisture-absorbing rotating disk 2201 in the first space and the second space is the same.
  • the first moisture-absorbing member housing 2720 and the second moisture-absorbing component housing 2820 also form a third space (the third space 2921 shown in Figure 17) after being fixedly connected.
  • the third space The three spaces are at least used to accommodate the driving member and/or the transmission member, and the first space is connected with the third space to form a closed space together.
  • the third space is used to accommodate the transmission member and/or the driving mechanism 2300.
  • the driving mechanism 2300 may be, for example, a driving motor, which is used to move (eg rotate) the moisture absorbing member 2200 relative to the moisture absorption channel and the regeneration channel.
  • the transmission component may be a reduction mechanism, which is placed within the third space.
  • One of the first moisture-absorbing member housing 2720 and the second moisture-absorbing component housing 2820 is provided with a groove, and the other is provided with a protrusion, and the protrusion forms a sealing connection with the groove.
  • a sealing ring can be provided in the groove to further further improve the sealing effect.
  • the drive motor may be disposed outside the third space and connected to the transmission mechanism through a transmission shaft.
  • the moisture absorption member 2200 rotates under the drive of the driving member and/or the transmission member.
  • the rotation direction is sequential rotation through the regeneration area, the area corresponding to the air flow outlet and the area corresponding to the air flow inlet. Since the air flow inlet area has the highest humidity and the air flow outlet area has relatively low humidity, according to the above rotation sequence, the hygroscopic member 2200 restores its moisture absorption capacity after passing through the regeneration area.
  • the hygroscopic member 2200 that restores its moisture absorption capacity first passes through the air flow outlet area to better absorb this area. moisture, reducing the humidity of the airflow returning to the clothing storage space. Then, the moisture-absorbing member 2200 passes through the airflow inlet area, fully absorbs moisture, and then enters the regeneration area again. After being heated, the moisture-absorbing capacity is restored again.
  • the fan-shaped area where the heating component 2500 is located is the regeneration area, and the condenser 2600, the regeneration fan 2400 and the circulation fan 2100 are all located near the side adjacent to the regeneration area.
  • the circulation fan 2100 is arranged on one side close to the regeneration area, and the air flow inlet is arranged close to the regeneration area;
  • the regeneration fan 2400 is arranged close to the side of the regeneration area, and is arranged adjacent to the circulation fan 2100;
  • the condenser 2600 is adjacent
  • the regeneration fan 2100 is arranged, that is, the regeneration fan is arranged between the circulation fan and the condenser 2600;
  • the regeneration fan 2400, the circulation fan 2100 and the condenser 2600 are all located on the same semicircular side of the moisture absorption rotating disk,
  • the regeneration fan 2400, the circulation fan 2100 and the condenser 2600 are all located on the same side of a diameter D0 of the moisture absorption rotating disk.
  • the circulating air flow inlet 2702 and the circulating air flow outlet 2902 of the housing are located on the same semicircular side as the regeneration fan 2400, the circulating fan 2100 and the condenser 2600, and are located on the same side of a diameter D0 of the moisture absorption rotating disk. .
  • the regeneration air flow inlet, the regeneration air flow outlet, the circulating air flow inlet 2702, the circulating air flow outlet 2902, the regeneration fan 2400, the circulation fan 2100 and the condenser 2600 are located on the same semicircular side, and are all located on the moisture absorption chamber. The same side of a diameter D0 of the rotating disk.
  • the moisture absorption member 2200, the circulation fan 2100 and the regeneration fan 2400 have rotating shafts.
  • the rotation axis of the moisture absorbing member 2200 is substantially parallel to the rotation axes of the circulation fan 2100 and the regeneration fan 2400 .
  • the rotation axis of the circulation fan 2100 and/or the regeneration fan 2400 is located outside the projection range of the moisture absorbing member 2200.
  • the projected area of the second space is less than or equal to the projected area of the first space, that is, the moisture-absorbing member has a larger moisture-absorbing area and a relatively smaller area. Regeneration area.
  • each component of the drying module 2000 (including the circulation fan 2100, the moisture absorption member 2200, the driving mechanism 2300, the regeneration fan 2400, the heating assembly 2500, the condenser 2600, etc.) is horizontal Arrangement, the rotating components (including circulation fan 2100, moisture absorption member 2200, driving mechanism 2300, regeneration fan 2400)
  • the rotating axes are substantially parallel and substantially perpendicular to the second housing of the washing and drying machine 1000 and the rotating axes of the drum 1100 . According to this embodiment, the height of the washing and drying machine 1000 can be minimized, thereby saving space.
  • the drum 1100 is generally a cylindrical structure with a rotating axis parallel to the ground, so there is more available space above the sides of the drum 1100 (compared to directly above).
  • some components of the drying module 2000 can be disposed in the space between the upper side of the drum 1100 and the housing 1200, so that the internal space of the washing and drying machine 1000 can be fully utilized, so that the washing and drying machine 1000 can The structure is more compact and the volume is smaller.
  • the circulation fan 2100, the driving mechanism 2300, the regeneration fan 2400, the condenser 2600 and other components are all disposed above the side of the drum 1100.
  • the overall height of the washing and drying machine 1000 depends on the diameter of the drum 1100 and the thickness of the component located directly above the drum 1100 (ie, the moisture absorbing member 220).
  • the rotating shafts of the two rotating components with the largest diameters of the drying module 2000 can be respectively disposed on both sides of the rotating shaft of the drum 1100, and both are in opposite planes and perpendicular to the rotating shaft of the drum 1100. This can further make full use of the internal space of the washing and drying machine 1000, making the structure more compact and the volume smaller.
  • the two rotating components with the largest diameters are the moisture absorption member 2200 and the circulation fan 2100.
  • the rotating axes of the moisture absorption member 2200 and the circulation fan 2100 are respectively located on the left and right sides of the drum 1100 (from the washing machine). Seen from the front view of the integrated drying machine 1000), they are all in the same plane and perpendicular to the rotating axis of the drum 1100.
  • Figures 7-9 respectively show a top view, a bottom view and an exploded view of the circulation fan 2100.
  • the circulation fan 2100 includes a motor 2110, a second circulation fan housing 2810, a fan impeller 2120 and a sealing gasket 2130.
  • the second circulation fan housing 2810 is in the shape of a volute, which meets fluid design requirements and can serve as a flow channel to provide maximum air volume and wind speed for the moisture absorption channel of the drying module 2000.
  • the second circulation fan housing 2810 is provided with a pipeline fixing card 2811 for fixing the pipeline and a line fixing card 2812 for fixing the circuit (such as the power line, control line, etc. of the motor 2110).
  • the motor 2110 and the second fan housing 2810 can be fixed using screws.
  • Figure 10 shows the cooperation mode between the circulation fan 2100 and the integrated first housing 2700 of the drying module 2000.
  • the second circulation fan housing 2810 can be fixed to the first circulation fan housing 2810 through screws 2904 , thereby fixedly connecting the circulation fan 2100 to the first housing 2700 .
  • the sealing gasket 2130 is located at the connection between the second circulation fan housing 2810 and the first circulation fan housing 2810 .
  • the edge of the first circulation fan housing 2810 or the edge of the second circulation fan housing 2810 A sink for placing the sealing gasket 2130 may be provided (not shown in Figure 10).
  • the air inlet of the circulation fan 2100 may be the first air inlet 2901 of the moisture absorption channel.
  • the air inlet of the circulation fan 2100 can be connected with the air outlet duct of the inner cylinder through the flexible pipe 2903.
  • the flexible pipe 2903 and the pressure plate 2905 can be connected through positioning pins, and the pressure plate 2905 can be fixed to the first circulation fan housing 2810 of the first housing 2700 using screws 2906, thereby connecting the flexible tube 2903 to the pressure plate 2905.
  • Pipe 2903 is connected to the circulation fan
  • the air inlet of 2100 and the other end of the flexible pipe 2903 can also be connected to the air outlet of the air outlet duct in the same manner.
  • FIG 12 shows the flow direction of the circulating air flow according to the embodiment of the present disclosure.
  • the air flow in the inner cylinder enters the first air inlet 2901 of the moisture absorption channel through the air outlet duct of the inner cylinder (with a filter inside) and the flexible tube 2903, that is, it enters the circulation The air inlet of the fan 2100 (as shown by arrow A).
  • the airflow flows out from the air outlet of the circulation fan 2100 to the lower side of the moisture absorption rotating disk 2201 (as shown by arrow B), passes through the moisture absorption rotating disk 2201 to reach the upper side of the moisture absorption rotating disk 2201 (as shown by arrow C), and after absorbing moisture
  • the upper space of the rotating disk 2201 flows (as shown by arrow D), and enters the inner cylinder (as shown by arrow E) through the first air outlet 2902 of the moisture absorption channel and the connector 1400.
  • Figures 13 and 14 respectively show an exploded view and a perspective view of the hygroscopic member 2200 after assembly.
  • Figure 15 shows a top view of the first housing 2700.
  • the absorbent member 2200 includes an absorbent rotating disc 2201, a peripheral shell of the absorbent rotating disc 2201, and a circumferential damping member 2204.
  • the outer peripheral shell of the hygroscopic rotating disc 2201 includes an outer peripheral upper clamping shell 2202 and an outer peripheral lower clamping shell 2203.
  • the circumferential damping member 2204 is provided on the outer periphery of the moisture-absorbing rotating disk 2201 or the inner peripheral wall of the outer peripheral upper clamping housing 2202 and/or the outer peripheral lower clamping housing 2203.
  • the outer peripheral upper clamp housing 2202 and the outer peripheral lower clamp housing 2203 clamp and fix the hygroscopic rotating disk 2201 and the circumferential shock absorbing member 2204. Clamping and fixing can be achieved by buckles, screws, glue, etc., for example.
  • the circumferential shock-absorbing member 2204 may be made of materials such as foam, soft rubber, tops, etc., for example.
  • the circumferential damping member 2204 is attached to the outer circumference of the moisture-absorbing rotating disk 2201, or is attached to the inner peripheral wall of the outer peripheral upper clamp housing 2202 and/or the outer peripheral lower clamping shell 2203, and can be attached to the outer ring and outer periphery of the moisture absorbing rotating disk 2201.
  • a buffer is formed between the clamp housing 2202 and the inner ring of the outer peripheral lower clamp housing 2203, which protects the moisture-absorbing rotating disk 2201 and avoids the moisture-absorbing rotating disk 2201 (especially when the moisture-absorbing rotating disk 2201 is implemented as a brittle material such as molecular sieve). ) collides with the outer peripheral upper clamp housing 2202 and the outer peripheral lower clamp housing 2203 during rotation and is damaged.
  • the junction of the outer peripheral upper clamp housing 2202 and the outer peripheral lower clamp housing 2203 is either a separate outer peripheral upper clamp housing 2202 or an outer periphery of a separate outer peripheral lower clamp housing 2203
  • a first sealing ring 2205 is provided.
  • the first sealing ring 2205 may be made of foam, soft rubber, tops, or other materials, for example.
  • the first sealing ring 2205 can seal the joint between the outer peripheral upper clamp shell 2202 and the outer peripheral lower clamp shell 2203, and on the other hand, it can seal with the first hygroscopic member shell 2720 of the first shell 2700.
  • the casing sealing ring 2724 forms a rotating seal, so that most of the moist airflow rising from the inner cylinder can pass through the moisture-absorbing rotating disk 2201 and be absorbed moisture, without passing between the outer periphery of the moisture-absorbing rotating disk 2201 and the inner periphery of the first housing 2700 The gaps leak out to ensure the moisture absorption effect.
  • the absorbent member 2200 further includes a central upper clamp 2206 , a lower central clamp 2207 and a central end shock absorber 2208 .
  • the center of the moisture absorption rotating disk 2201 is provided with a first hole 2209.
  • the second hole 2210 is opened in the center of the clamp 2206, and the third hole 2211 is opened in the center of the lower central clamp 2207.
  • the upper center clamp 2206 and the lower center clamp 2207 pass through the first hole 2209 to clamp and fix the moisture absorbing rotating disk 2201. Clamping and fixing can be achieved by buckles, screws, glue, etc., for example.
  • the first hole 2209, the second hole 2210 and the third hole 2211 are all sleeved on the short axis 2721 in the center of the first absorbent member housing 2720 of the first shell 2700, thereby connecting the absorbent member 2200 and the first shell 2700.
  • the central end face shock absorber 2208 is sleeved on the central lower clamp 2207 and is located between the central lower clamp 2207 and the moisture-absorbing rotating disk 2201 to protect the moisture-absorbing rotating disk 2201 and prevent the moisture-absorbing rotating disk 2201 from rotating. It rubs against the center lower clamp 2207 and is damaged.
  • the moisture-absorbing rotating disk has a central clamp, and the central clamp has a certain diameter.
  • the first moisture-absorbing member housing 2720 and the second moisture-absorbing component housing 2820 are provided with parts corresponding to the central clamp.
  • Matching clamp piece accommodating part, the clamp piece accommodating part is circular; the first partition 2725 and the second partition 2822 point to the clamp part accommodating part, and do not point to the rotation axis.
  • the first partition 2725 and the second partition 2822 are disposed tangentially to the outer periphery of the clamp member receiving portion.
  • driving teeth are provided on the outer periphery of the upper peripheral clamp housing 2202 .
  • the driving mechanism 2300 may be a driving motor, and the output end of the driving motor is provided with a gear.
  • the gear of the driving motor meshes with the driving teeth on the outer peripheral upper clamp housing 2202, thereby driving the moisture-absorbing member 2200 to rotate.
  • a belt groove may also be provided on the outer periphery of the clamping housing 2202, and the driving motor drives the moisture-absorbing member 2200 to rotate through belt transmission.
  • the driving method of the moisture absorbing member 2200 is not limited to the peripheral driving method shown in FIG. 14 .
  • other methods may be used to drive the absorbent member 2200 to rotate.
  • the output end of the driving mechanism 2300 can also be connected to the upper central clamp 2206 or the lower central clamp 2207, and the hygroscopic member 2200 can be driven to rotate by driving the upper central clamp 2206 or the lower central clamp 2207, that is, a centrally driven method can be used. way to drive the moisture absorbing member 2200 to rotate.
  • the driving mechanism 2300 needs to be disposed in the vertical direction (upper or lower) of the absorbent member 2200.
  • the driving mechanism 2300 and the moisture absorbing member 2200 are arranged horizontally. It can be understood that compared with the peripheral drive, the central drive takes up more space in the vertical direction, which increases the height and volume of the washing and drying machine. However, in the central driving mode, the driving mechanism 2300 can directly drive the moisture-absorbing member 2200 to rotate, without having to additionally provide a gear or belt at the output end of the driving mechanism to drive the moisture-absorbing member 2200 like a peripheral drive, thereby simplifying the driving mechanism 2300 structure and reduce the moment of the central axis. Those skilled in the art can select an appropriate driving method to drive the moisture-absorbing member 2200 to rotate according to actual needs.
  • an auxiliary rotating ring 2212 is provided on the outer periphery of the upper clamp housing 2202 .
  • the first shell 2700 is provided with a first hygroscopic member housing 2720 for installing the hygroscopic member 2200.
  • the inner wall of the first hygroscopic member housing 2720 is provided with a flexible roller 2722.
  • the flexible roller 2722 may be provided, for example, on an outwardly protruding mounting portion of the inner wall of the first absorbent member housing 2720 .
  • Flexible roller 2722 rotating shaft and moisture absorption structure The axis of rotation of piece 2200 is parallel.
  • the auxiliary rotating ring 2212 and the flexible roller 2722 are in rolling cooperation, which can ensure the stable rotation of the hygroscopic member 2200 and eliminate the sliding friction between the hygroscopic member 2200 and the inner ring of the first shell 2700.
  • the diameter of the flexible roller 2722 is elastically variable, that is, when the flexible roller 2722 is squeezed in the radial direction, the distance between the extrusion point and the rotation axis of the flexible roller 2722 is variable.
  • the auxiliary rotating ring 2212 can squeeze the flexible roller 2722 to cause its deformation, without causing the auxiliary rotating ring 2212 and the flexible roller 2722 to deform.
  • the pressing force of the flexible roller 2722 generates sliding friction.
  • the cooperation of the auxiliary rotating ring 2212 and the flexible roller 2722 can reduce the collision with the inner ring of the first shell 2700 due to unstable and uneven rotation of the hygroscopic component 2200, and avoid damage to the hygroscopic component 2200 (especially the hygroscopic rotating disc 2201) due to collision. ).
  • the auxiliary rotating ring 2212 in addition to the auxiliary rotating ring 2212 being disposed on the outer periphery of the upper outer clamp housing 2202 as shown in Figures 13 and 14 , the auxiliary rotating ring 2212 can also be disposed on the outer periphery of the outer lower clamp housing 2203 . Furthermore, embodiments of the present disclosure do not limit the number of flexible rollers 2722. Those skilled in the art can set five flexible rollers 2722 as shown in Figure 15, or can also set a greater or smaller number of flexible rollers 2722.
  • the diameter of the outer ring of the sealing ring is larger than the diameter of the outer ring of the auxiliary rotating ring, and the auxiliary rotating ring protrudes beyond the driving teeth in the peripheral direction to prevent airflow from flowing out of the driving part to improve the sealing effect.
  • the bottom surface of the first absorbent member housing 2720 is provided with rigid rollers 2723.
  • the rigid roller 2723 may be provided, for example, at the edge of the bottom surface of the first absorbent member housing 2720.
  • the diameter of the rigid roller 2723 is fixed.
  • the rotation axis of the rigid roller 2723 is perpendicular to the rotation axis of the moisture absorbing member 2200.
  • the rigid roller 2723 can roll with the lower surface of the outer peripheral lower clamp housing 2203 to support the outer peripheral lower clamp housing 2203 and eliminate friction between the hygroscopic member 2200 and the bottom surface of the first shell 2700.
  • embodiments of the present disclosure do not limit the number of rigid rollers 2723.
  • Those skilled in the art can set four rigid rollers 2723 as shown in Figure 15, or can also set a greater or smaller number of rigid rollers 2723.
  • Figures 16 and 17 respectively show exploded views of the first absorbent member housing 2720 and the second absorbent member housing 2820 for installing the absorbent member 2200.
  • Figure 18 shows an exploded view of the installation of the first absorbent member housing 2720, the second absorbent member housing 2820, and the absorbent member 2200.
  • the first housing 2700 of the drying module 2000 can be an integrated first housing, with a first moisture-absorbing component housing for installing the moisture-absorbing component 2200 disposed thereon. 2720.
  • the drying module 2000 also includes a separate second absorbent member housing 2820 for mounting the absorbent member 2200.
  • the second moisture-absorbing member housing 2820 also includes a first air outlet 2902 of the moisture-absorbing channel.
  • the hygroscopic member 2200 is rotatably connected to the short axis 2721 of the first hygroscopic member housing 2720, so that the hygroscopic member 2200 is rotatably connected to the substantially cylindrical space formed by the first hygroscopic member housing 2720 and the second mounting portion 2821.
  • the hygroscopic rotating disc can be configured in a cylindrical shape.
  • the thickness of the hygroscopic rotating disc can be set to 10-100mm, and the diameter Can be set to 40-500mm. In one embodiment, the thickness of the hygroscopic rotating disk can be set to 25mm, and the diameter can be set to 320mm.
  • the thickness of the hygroscopic rotating disk can be set to 30mm, and the diameter can be set to 200mm. In another embodiment, the thickness of the hygroscopic rotating disc can be set to 35mm, and the diameter can be set to 300mm. In another embodiment, the thickness of the hygroscopic rotating disc can be set to 40mm, and the diameter can be set to 350mm.
  • the absorbent member includes a cylindrical absorbent rotating disc, the ratio of thickness to diameter of the absorbing rotating disc is 1:20-1:5. In one embodiment, when the thickness of the absorbent rotating disk is set to 35 mm, the diameter of the absorbing rotating disk may be set to 175 mm-750 mm. In one embodiment, when the thickness of the absorbent rotating disk is set to 42 mm, the diameter of the absorbing rotating disk may be set to 210 mm-840 mm. In one embodiment, when the thickness of the absorbent rotating disk is set to 25 mm, the diameter of the absorbing rotating disk may be set to 125 mm-500 mm.
  • the first absorbent member housing 2720 is provided with a first partition 2725 and the second mounting portion 2821 is provided with a second partition 2822.
  • the second partition 2822 is opposite to the first partition 2725, thereby dividing the cylindrical space where the hygroscopic component 2200 is located into a hygroscopic area 2907 and a regeneration area.
  • the area 2908, that is, the first partition 2725 and the second partition 2822 can separate the moisture absorption rotating disk 2201 into the moisture absorption area 2907 and the regeneration area 2908.
  • the circulating airflow flows into the moisture absorption area 2907 of the moisture absorption rotating disc 2201 from one side (for example, the bottom) of the moisture absorption rotating disc 2201.
  • the moisture absorption area 2907 is used to absorb moisture in the circulating air flow.
  • the moisture removal airflow flows into the regeneration area 2908 of the moisture absorption rotating disk 2201 from the other side (for example, the upper side) of the moisture absorption rotating disk 2201, and is used to discharge the moisture absorbed by the moisture absorption rotating disk 2201 through the moisture removal airflow, thereby realizing the regeneration of the moisture absorption rotating disk 2201. Recycle and reuse.
  • the first absorbent member housing 2720 is also provided with at least one third partition 2726.
  • At least one third partition 2726 separates the hygroscopic area 2907 into at least a first hygroscopic area 2907-1 and a second hygroscopic area 2907-2, thereby being able to separate the circulating airflow flowing into the hygroscopic area 2907.
  • the circulating airflow After the circulating airflow enters the space between the first casing 2700 and the hygroscopic component 2200 through the circulating fan, it is relatively evenly divided into at least two parts by the third partition 2726 (that is, the airflow of the two parts is approximately the same), thus avoiding the
  • the circulating airflow flows more toward the circumference of the absorbent member 2200 under the action of centrifugal force, while the airflow near the center of the circle is smaller.
  • the moisture absorption efficiency of the moisture absorption member 2200 can be improved and uniform and stable moisture absorption can be achieved.
  • a first sealing member is provided between the moisture-absorbing member 2200 and the first partition 2725 of the first moisture-absorbing member housing 2720.
  • the first sealing member (for example, can be through a screw, snap, glue, etc.) is fixed on the upper end surface of the first partition 2725.
  • the first sealing member may include a sealing strip 2728 and a metal pressing piece 2727, for example.
  • the sealing strip 2728 may be made of rubber, foam, top, or other materials, for example.
  • the metal pressing piece 2727 can be connected to the sealing strip 2728 by screws or glue and fix the sealing strip 2728 on the first partition 2725 .
  • a second sealing member is provided between the moisture-absorbing member 2200 and the second partition 2822 of the second moisture-absorbing member shell 2820.
  • the second sealing member (for example, can be Screws, buckles, glue etc.) is fixed on the lower end surface of the second partition 2822 and is located directly above the first seals 2727 and 2728.
  • the second sealing member may include, for example, a sealing ring 2824 and a metal pressing piece 2823.
  • the sealing ring 2824 may be made of rubber, foam, top, or other materials, for example.
  • the metal pressing piece 2823 can be connected to the sealing ring 2824 by screws or glue and fix the sealing ring 2824 on the second partition 2822.
  • the first seals 2727, 2728 and the second seals 2823, 2824 can achieve dynamic sealing between the hygroscopic member 2200 and the first and second hygroscopic member housings 2720, 2820, that is, during the rotation of the hygroscopic member 2200 During the process, the moisture absorption area 2907 and the regeneration area 2908 are separated and maintained relatively sealed.
  • the circulating airflow in the moisture absorption area 2907 passes through the first partition 2725 and the second partition 2822 as little as possible to reach the regeneration area 2908, and the moisture discharge airflow in the regeneration area 2908 also passes through the first partition 2725 and the second partition as little as possible 2822 reaches the hygroscopic area 2907.
  • the distance between the first sealing member and the second sealing member, especially the sealing strip 2728 and the sealing ring 2824, and the hygroscopic member 2200 can be set within a reasonable smaller interval, such as between 0-0.5 mm, Or 0.6-0.8mm is relatively easy to achieve. In this way, during the rotation of the moisture-absorbing rotating disk, it will not come into contact with the first sealing member and the second sealing member to cause an increase in rotational resistance, and a better dynamic sealing effect can be achieved.
  • Figure 19 illustrates an exemplary securing manner of the integrated first absorbent member shell 2720 and the second absorbent member shell 2820.
  • a shell sealing ring 2724 is provided at the connection between the second moisture-absorbing member housing 2820 and the first moisture-absorbing member housing 2720.
  • the shell sealing ring 2724 is used to ensure the sealing of the space where the hygroscopic component 2200 is located.
  • the housing sealing ring 2724 may be, for example, a rubber gasket, a silicone gasket, or the like.
  • a groove for installing the housing sealing ring 2724 is provided in the second absorbent member housing 2820 or the first absorbent member housing 2720. Install the housing sealing ring 2724 to the groove, fasten the second moisture-absorbing member housing 2820 and the first moisture-absorbing member housing 2720 with bolts.
  • the integrated first housing 2700 of the drying module 2000 is provided with an installation portion 2730 for installing the regeneration fan 2400 (the regeneration fan first housing 2410 ).
  • the mounting part 2730 may cooperate with another separate housing (the second regeneration fan housing 2410 ) corresponding to the regeneration fan 2400 to fix the regeneration fan 2400 in the installation part 2730 of the first housing 2700 .
  • the regeneration fan 2400 may be, for example, a packaged fan module.
  • FIG. 20 shows the flow direction of the dehumidification airflow according to the embodiment of the present disclosure.
  • the dehumidified airflow enters the air inlet of the regeneration fan 2400 (as shown by arrow A), passes through the regeneration fan 2400, and enters the heating component 2500 (such as Indicated by arrows B and C).
  • the heating component 2500 is located on one side of the regeneration area of the moisture absorption rotating disc 2201.
  • the drying module is arranged horizontally, and the heating component 2500 is located above the moisture absorption rotating disc 2201.
  • the dehumidification airflow flows into the heating component 2500, it passes through the regeneration area of the moisture absorption rotating disk 2201 from top to bottom (as shown by arrow D), and then flows into the condenser 2600 (as shown by arrow E).
  • the air outlet of the shell of the condenser 2600 (not shown in Figure 20) is connected with the air inlet of the regeneration fan 2400 through the second connecting piece 2910, so that the regeneration channel forms a closed loop.
  • the dehumidified airflow condensed by the condenser 2600 flows into the air inlet of the regeneration fan 2400 again through the second connector 2910 (as shown by arrow A).
  • the dehumidified air flow is allowed to circulate in the regeneration channel.
  • the closed-loop regeneration channel can avoid the interaction between the moisture exhaust airflow and the external environment of the washing and drying machine, and reduce the impact on the external environment (such as affecting the humidity of the external air, etc.).
  • the regeneration channel may also be an open-loop channel.
  • a second air outlet 102 and a second air inlet 103 are provided on the side of the housing 10 of the washing and drying machine.
  • the second air outlet 102 is connected to the outlet of the regeneration channel 202 .
  • the air end 621 is connected, and the second air inlet 103 is connected with the air inlet end 622 of the regeneration channel 202 .
  • at least one of the air outlet end 621 and the air inlet end 622 is provided with a condenser.
  • the condenser provided at the air outlet end 621 can condense and dry the dehumidified airflow discharged to the outside, thereby reducing the humidity of the airflow discharged to the outside and avoiding any impact on the external environment.
  • the condenser provided at the air inlet end 622 can dry the external air flow flowing into the regeneration channel, thereby improving the dehumidification effect of the regeneration area.
  • an electric auxiliary heating component may be provided at the air inlet end 622 .
  • the electric auxiliary heating component is used to preheat the dehumidification airflow flowing into the regeneration channel 202 to improve the dehumidification effect in the regeneration area.
  • each part of the moisture absorption rotating disk 2201 rotates from the moisture absorption channel to the regeneration channel, and then rotates from the regeneration channel to the moisture absorption channel.
  • the part of the moisture absorption rotating disk 2201 located in the moisture absorption area absorbs the moisture in the moisture absorption channel.
  • the moisture in the circulating air stream is then rotated to the regeneration area.
  • the heating component 2500 heats this part to quickly desorb the moisture in this part into the dehumidification airflow, thereby turning the dehumidification airflow into a high-temperature airflow containing water vapor (ie, a high-temperature moisture-containing airflow).
  • the condenser 2600 condenses the high-temperature moist air flow into a low-temperature dry air flow, and discharges the condensed water out of the condenser 2600 through the condensed water outlet.
  • the low-temperature dry air flow processed by the condenser 2600 enters the air inlet of the regeneration fan 2400 again (corresponding to the above-mentioned closed-loop regeneration channel), or is discharged to the outside (corresponding to the above-mentioned open-loop regeneration channel).
  • the heating component 2500 is disposed on one side of the regeneration area of the moisture absorption rotating disk 2201, in this embodiment it is above, and covers the regeneration area.
  • Figures 21 and 22 respectively show an exploded view and a perspective view of the relevant structures of the heating assembly 2500 and the regeneration fan 2400.
  • the regeneration fan 2400 is fixed in the first regeneration fan housing 2410 and the second regeneration fan housing 2420.
  • the heating assembly 2500 is connected to the air outlet of the regeneration fan 2400 through the first connecting piece 2909.
  • a first sealing gasket 2912 is provided at the connection between the heating component 2500 and the first connecting member 2909 .
  • the heating assembly 2500 can be connected to the second shell of the module corresponding to the moisture-absorbing member through the third connecting member 2911, for example, to the sector-shaped notch on the upper end surface of the second moisture-absorbing member housing 2820 shown in Figure 18.
  • the air inlet of the regeneration fan 2400 is connected to the shell of the condenser 2600 through the second connection piece 2910 (not shown in Figures 21 and 28).
  • a second sealing gasket 2913 is provided at the connection between the second connecting member 2910 and the shell of the condenser 2600.
  • Figures 23 and 24 respectively show a perspective view and an exploded view of the first connecting member 2909
  • Figures 25 and 26 respectively show a perspective view and an exploded view of the second connecting member 2910.
  • the first connecting member 2909 can be split into two upper and lower parts, namely, the upper first connecting member 2914 and the lower first connecting member 2915.
  • the first connecting member upper part 2914 and the first connecting member lower part 2915 can be processed separately, and then the two are welded or bolted to obtain the first connection.
  • Part 2909 can also be split into two upper and lower parts, namely, an upper second connecting member 2916 and a lower second connecting member 2917 .
  • the second connecting member upper part 2916 and the second connecting member lower part 2917 can be processed separately, and then the two are welded or bolted to obtain the second connecting member 2910.
  • the processing difficulty of the two parts can be reduced and the manufacturability of the two parts can be ensured.
  • the shapes of the first connector 2909 and the second connector 2910 are determined based on the structure and arrangement of the regeneration fan 2400, the heating assembly 2500, the condenser 2600 and other components in the regeneration channel, so that they can be connected with the components in the regeneration channel. Other components cooperate to achieve the effect of sealing the regeneration channel and adjusting the flow direction of the moisture removal airflow.
  • the first connector 2909 can be a flexible integrated structure.
  • the air inlet and outlet at both ends can be deformed and extended into the air outlet of the condenser shell and the air inlet shell of the regeneration fan. After the deformation is restored, A sealed connection is formed by bolt tightening.
  • Figure 27 shows a schematic diagram of the installation position of the heating assembly 2500 on the second absorbent member housing 2820.
  • the heating component 2500 is disposed on the second moisture-absorbing member housing 2820, and a heat insulation ring 2918 and a second sealing ring 2919 are provided between the heating component 2500 and the second moisture-absorbing component housing 2820.
  • the heat insulation ring 2918 is made of heat insulation or thermal insulation material. In some embodiments, the heat insulation ring 2918 may be made of metal.
  • the second sealing ring 2919 can be made of silicone, rubber, foam or other materials.
  • the second sealing ring 2919 covers the heat insulation ring 2918, and the second sealing ring 2919 is in direct contact with the second moisture-absorbing member shell 2820 and the heat insulation ring 2918.
  • the regeneration area of the hygroscopic rotating disk is located below the heating element 2500.
  • the second moisture-absorbing component housing 2820 may be made of plastic material, for example
  • the second moisture-absorbing component may be caused to absorb moisture over time. Deformation or damage of component housing 2820.
  • a temperature transfer buffer zone can be formed between the heating assembly 2500 and the second hygroscopic member shell 2820 to prevent the second hygroscopic member shell 2820 from being deformed or damaged due to high temperature. .
  • Figures 28-30 show a perspective view of the heating assembly 2500, a schematic view of the mesh plate 2550, and a bottom view of the heating assembly 2500, respectively.
  • the heating assembly 2500 includes a fan-shaped housing 2510, a mesh plate 2520 and a heating tube 2530 disposed in the fan-shaped housing 2510.
  • the heating pipe 2530 is arranged below the mesh plate 2520, and the mesh plate 2520 is provided with a plurality of air holes 2521.
  • An air inlet 2540 is provided on the circumferential or radial side of the fan-shaped housing 2510.
  • the dehumidification airflow flowing out from the first connector 2909 flows from the air inlet 2540 into the top of the mesh plate 2520 in the fan-shaped housing 2510. Space, Then it passes through the mesh 2521 on the mesh plate 2520, and after being heated by the heating pipe 2530, flows downward to the regeneration area on the moisture absorption rotating disk.
  • the high-temperature dehumidification airflow heated by the heating pipe 2530 can desorb moisture in the regeneration area.
  • the diameters of the plurality of air holes 2521 on the mesh plate 2520 may not be exactly the same.
  • the diameters of the plurality of air holes 2521 may be sequentially reduced along the flow direction of the dehumidification airflow in the heating assembly 2500 .
  • the air volume can be adjusted to allow the moisture-exhausted air flow to pass through the mesh plate 2520 evenly, so that the heating pipe 2530 can evenly heat the moisture-exhausted air flow.
  • the air inlet 2540 is opened on the circumferential side of the fan-shaped housing 2510
  • the flow direction of the dehumidified airflow inside the fan-shaped housing 2510 is from the circumference to the center of the circle.
  • the diameter of the plurality of air holes 2521 on the mesh plate 2520 tends to decrease along the direction from the circumference to the center of the sector housing (as shown by the arrows in Figure 29), whereby the air volume can be adjusted so that The heating tube 2530 can uniformly heat the dehumidification airflow.
  • the air inlet 2540 may also be disposed on the radial side of the sector-shaped housing 2510.
  • the dehumidification airflow flows inside the fan-shaped housing 2510 along a direction that is approximately perpendicular to the radius (circumferential direction).
  • the radius side from where the air inlet is located to the other radius of the fan-shaped housing 2510 side flow.
  • the diameters of the plurality of air holes 2521 on the mesh plate 2520 tend to decrease.
  • the air volume passing through the mesh plate 2520 can be adjusted, so that the heating tube 2530 can evenly heat the dehumidification airflow, and then the heated high-temperature dehumidification airflow can evenly dehumidify the regeneration area of the moisture absorption rotating disk, thereby improving Moisture removal effect.
  • the heating tube 2530 is not disposed directly below the air hole 2521 , but is offset relative to the air hole 2521 toward the center direction of the sector-shaped housing. Since the position of the heating pipe 2530 is offset to a certain extent relative to the air hole 2521, the heating pipe 2530 will not form a large resistance to the dehumidification airflow passing through the air hole 2521. In addition, when the dehumidified airflow enters the air inlet 2540 and passes through the air hole 2521, the dehumidified airflow has a velocity from the circumference of the fan-shaped housing to the center of the circle (as shown by the arrow in Figure 29).
  • the dehumidification airflow passing through the air hole 2521 can be directed towards the heating pipe 2530, thereby improving the effect of the heating pipe 2530 on the dehumidification airflow. heating efficiency.
  • the lower wall of the sector-shaped housing 2510 extends outward to form a third mounting portion 2550 .
  • the heating assembly 2500 also includes a temperature sensor 2560 covered with a thermally conductive sheet 2570. After the temperature sensor 2560 is covered by the thermal conductive sheet 2570, it is arranged on the third mounting part 2550.
  • the temperature sensor 2560 is used to detect the temperature of the heating component 2500 to control the switch of the heating tube 2530. It can be understood that since the heated dehumidification air flow may form turbulent flow in the heating assembly 2500, the temperature in the heating assembly 2500 is not stable. If the temperature sensor 2560 is directly used to detect the temperature of the air flow in the heating component 2500, the temperature value detected by the temperature sensor 2560 will be jumpy and unstable, which is not conducive to effective control of the heating tube 2530. By disposing the temperature sensor 2560 in the heat conductive sheet 2570, the temperature in the heating component 2500 is first conducted to the heat conductive sheet 2570 through heat conduction, and the temperature sensor 2560 detects the temperature of the heat conductive sheet 2570. Spend.
  • the temperature of the thermal conductive sheet 2570 is more stable relative to the temperature of the air flow. Therefore, compared with the temperature sensor 2560 directly detecting the temperature of the air flow, the temperature sensor 2560 detects the temperature value of the thermal conductive sheet 2570, which can improve the stability and accuracy of temperature detection, so that the heating tube 2530 can be effectively controlled.
  • the heating component 2500 heats the dehumidification airflow to obtain high-temperature airflow.
  • This high-temperature air flow can desorb moisture in the regeneration area of the hygroscopic rotating disk to obtain a high-temperature moisture-containing air flow.
  • the high-temperature moist air flow heated by the condenser 2600 continues to flow into the condenser 2600 to condense the high-temperature moist air flow into a low-temperature dry air flow, and the condensed water is discharged from the condenser 2600 through the condensed water outlet.
  • the low-temperature dry air flow processed by the condenser 2600 enters the air inlet of the regeneration fan 2400 again (corresponding to the above-mentioned closed-loop regeneration channel), or is discharged to the outside (corresponding to the above-mentioned open-loop regeneration channel).
  • FIG. 31 shows a schematic diagram of the fixing manner of the condenser 2600 and the first housing 2700.
  • the second condenser housing 2830 is matched with the mounting portion 2740 (ie, the first condenser housing) for installing the condenser in the first housing 2700 .
  • the second condenser shell 2830 covers the condenser 2600, presses downward the sealing strip 2920 around the condenser 2600, and is sealed and fixed with the mounting portion 2740.
  • the second condenser housing 2830 and the mounting portion 2740 form a complete shell of the condenser 2600, that is, the condenser shell.
  • An air outlet 2631 is formed on the condenser shell, and the air outlet 2631 is connected to the air inlet of the regeneration fan 2400 through the second connector 2910 (see Figures 20-22).
  • Figure 32 shows a cross-sectional view of condenser housing 2630.
  • the high-temperature and high-humidity dehumidified airflow that passes through the regeneration area 2908 enters the condenser shell 2630 (as shown by arrow A), and undergoes a drying process (as shown by the arrow) in the condenser 2600 (not shown in Figure 32).
  • B) flows out from the air outlet 2631 to the second connecting member 2910 (shown by arrow C).
  • a baffle 2632 is provided on the bottom surface of the condenser shell 2630 near the air outlet 2631 .
  • the baffle 2632 can improve the condensation effect of the condenser 2600, so that the dehumidified air flow can be fully dried by the condenser 2600.
  • the baffle 2632 can prevent the dehumidified airflow entering the condenser shell 2630 from flowing out directly from the gap between the condenser 2600 and the bottom surface of the condenser shell 2630 without passing through the condenser 2600, causing this part of the airflow to be unable to be condensed and dried.
  • the condenser 2600 is provided with a condensed water pipe 2640 for flowing condensed water.
  • the condensate water pipe 2640 further includes a water inlet 2610 and a water outlet 2620.
  • the direction indicated by arrow A in Figure 31 is the flow direction of the dehumidified air flow in the condenser 2600.
  • a sensor for detecting the status of the condensed water such as a temperature sensor, a flow sensor, etc.
  • a sensor for detecting the status of the condensed water such as a temperature sensor, a flow sensor, etc.
  • an inductive sensor may be provided outside the condensed water inlet pipe to detect whether there is condensed water flowing through the condensed water pipe 2640.
  • the water flow in the condensation water pipe 2640 can be adjusted or a warning can be issued to ensure the normal operation of the condenser 2600 and improve the condensation effect. For example, if the temperature sensor detects that the temperature of the condensed water is too high, the current condensation effect may be poor.
  • the flow rate of the condensed water can be increased accordingly, thereby lowering the temperature of the condensed water and improving the condensation effect.
  • the flow sensor detects that the flow rate of condensed water is too small, then The condensate water pipe 2640 may have a risk of leakage, and a warning message may be issued to remind the user to inspect or repair the condensate water pipe 2640.
  • a temperature sensor can also be provided at the air inlet and/or the air outlet of the condenser shell, and whether the condenser is working normally is determined based on the temperature detection value or the temperature detection difference value or the temperature difference value between the air inlet and the air outlet.
  • the condensation water pipe 2640 may be a serpentine pipe.
  • the condensation water pipe 2640 is arranged in a circuitous manner in the condenser 2600 , thereby increasing the contact area between the dehumidification airflow and the condensation water pipe 2640 , thereby fully condensing the dehumidification airflow.
  • the condenser 2600 includes a first side and a second side that are opposite to each other in the flow direction of the moisture removal gas flow (see arrow A), wherein the first side is located downstream of the second side.
  • the water inlet 2610 and the water outlet 2620 of the condensed water pipe 2640 are both located on the side wall of the condenser 2600, which connects the first side and the second side of the condenser 2600, and is smaller than the first side of the condenser 2600. On the two sides, the water inlet 2610 and the water outlet 2620 are closer to the first side.
  • the condensed water pipe 2640 extends from the water inlet 2610 along a first zig-zag path toward the second side of the condenser 2600 to a location away from the first side, and from that location along a second zig-zag path.
  • the path extends toward the first side to the water outlet 2620, wherein the length of the first zigzag path is greater than the length of the second zigzag path, for example, twice the length of the second zigzag path.
  • the temperature of the condensed water gradually increases from the first side of the condenser 2600 to the second side of the condenser 2600 due to heat release from the moisture exhaust gas flow, and vice versa. Due to the heat absorption of the condensed water, the temperature of the exhaust air flow gradually decreases from the second side of the condenser 2600 to the first side of the condenser 2600, so that a certain temperature difference between the exhaust air flow and the condensed water is maintained during the entire condensation process. Thereby improving the condensation effect.
  • the condenser 2600 is a water-cooled condenser, that is, the flowing condensed water is used as the cooling medium to take away the heat released when the exhaust air flow is condensed.
  • the condenser 2600 may also be an air condenser (using air as the cooling medium), an evaporative condenser (using water and air as the cooling medium), etc.
  • drying module 2000 described above is only an exemplary embodiment of the drying module of the present disclosure.
  • Various technical features of the drying module 2000 can be replaced with other technical features, thereby forming drying modules of other embodiments of the present disclosure.
  • the drying module 2000 includes an integrated first housing 2700 and a separate second housing, such as a second circulation fan housing 2810, a second moisture-absorbing member housing 2820, Second condenser housing 2830, etc.
  • the drying module 2000 is overlapped and fixed to the housing 1200 of the washing and drying machine through the fourth mounting portion 2701 on the first housing 2700 .
  • flexible pipes are provided at the connections between the air outlet duct and the air inlet duct of the drying module 2000 and the drum 1100 . This can prevent the vibration of the drum 1100 from being transmitted to the drying module 2000 and causing damage to the drying module 2000 .
  • both the first housing and the second housing of the drying module can be separate, that is, the drying module can be composed of a circulation fan housing, a moisture absorption component housing, and a regeneration fan housing. It is assembled from various parts such as body and condenser shell. According to this embodiment, each component of the drying module can be modularized to facilitate repair and replacement of individual components. It is beneficial to the maintenance of the entire drying module.
  • each component of the drying module may be fixedly connected to the outer cylinder of the drum. This saves space and reduces the height of the washing and drying machine.
  • the moisture-absorbing component (especially the moisture-absorbing rotating disc) is more fragile and more affected by vibration than other components of the drying module, while other components are less affected by vibration, therefore
  • the moisture-absorbing component shell can be fixedly connected to the outer shell of the washing and drying machine, and other components can be fixedly connected to the outer cylinder of the inner cylinder. In this way, the cost of the first shell of the integrated drying module can be reduced while preventing the moisture absorption component (especially the moisture absorption rotating disk) from being damaged by vibration.
  • flexible pipes are used to transition the pipelines between the hygroscopic component and all other components that may vibrate for vibration isolation.
  • drying module 2000 does not limit the positional relationship between the drum 1100 and the drying module 2000.
  • the drying module 2000 can also be disposed behind the drum 1100 (not shown), below (not shown), and so on.
  • this disclosure does not limit the position of the air outlet duct of the inner cylinder.
  • the air outlet duct 1300 can also be arranged at the left front, right rear, and right side of the drum 1100 . Wait ahead. It can be understood that after adjusting the position of the air outlet duct 1300, the positions of other components of the drying module (such as circulation fans, moisture absorption components, etc.) also need to be adjusted accordingly.
  • the air outlet duct 1300 may be arranged extending from the rear left side of the inner barrel to the front left side of the inner barrel.
  • the filter box with the filter installed is disposed in the air outlet duct 1300 close to the front panel or side panel of the washing and drying machine, thereby making it easy for the user to manually take out the filter. It can be understood that since the filter needs to be taken out manually, the air outlet duct 1300 will actually be cut off by the filter box. Therefore, in order to ensure the air tightness and integrity of the air outlet duct 1300, a seal needs to be provided at the position of the filter box.
  • a cooling area may also be provided on the moisture absorption rotating disk. That is, the moisture-absorbing rotating disk is divided into three sector-shaped areas: moisture absorption area, regeneration area, and cooling area.
  • the cooling area is located downstream of the regeneration area and upstream of the moisture absorption area along the rotation direction of the moisture absorption rotating disk. After a certain part of the moisture-absorbing rotating disk is heated in the regeneration area, it is rotated to the cooling area for cooling, and then rotated to the moisture-absorbing area to absorb moisture from the hot and humid airflow coming from the inner cylinder. This can improve the moisture absorption effect and avoid damage to the rotating disk due to moisture absorption. Too high temperature will adversely affect the moisture absorption effect.
  • a cooling channel corresponding to the above-mentioned cooling area may be provided.
  • the cooling channel is used to introduce air flow into the cooling area, thereby cooling the portion of the moisture-absorbing rotating disk located in the cooling area.
  • the cooling channel may be a channel different from the moisture absorption channel and the regeneration channel, and an independent fan is provided in the cooling channel to generate air flow in the cooling channel.
  • the cooling channel can also reuse part of the regeneration channel.
  • the air flow in the channel is generated by a regeneration fan.
  • the air outlet of the regeneration fan can be connected to the regeneration channel and the cooling channel respectively, so that air flow can be generated in the regeneration channel and the cooling channel.
  • the air flow in the regeneration channel i.e., the dehumidification air flow
  • the heating component to dehumidify the part of the moisture-absorbing rotating disk located in the regeneration area
  • the air flow in the cooling channel does not need to be heated and flows directly through the cooling area.
  • the part of the moisture-absorbing rotating disk located in the cooling area is cooled.
  • the absorbent member may also be a strip-shaped absorbent belt.
  • the driving mechanism can drive the hygroscopic belt to make reciprocating linear motion (ie, translation) relative to the hygroscopic channel and the regeneration channel, or drive the hygroscopic channel and the regeneration channel to make linear motion relative to the hygroscopic belt.
  • the area on the moisture absorption belt aligned with the moisture absorption channel is used to absorb moisture from the humid circulating air flow, and the area on the moisture absorption belt aligned with the regeneration channel is used for moisture removal.
  • the absorbent member may be an absorbent flat surface.
  • Multiple moisture absorption channels and regeneration channels can be provided respectively.
  • a plurality of moisture absorption channels and a plurality of regeneration channels are arranged alternately in the horizontal direction and pass through the moisture absorption plane in the vertical direction.
  • two moisture absorption channels and two regeneration channels can be provided, and the order of the four from left to right in the horizontal direction is moisture absorption channel - regeneration channel - moisture absorption channel - regeneration channel.
  • the driving mechanism can drive the hygroscopic plane to reciprocate in the horizontal direction in a stepwise manner. That is, the driving mechanism drives the moisture-absorbing plane to move a certain distance in the horizontal direction each time to reach a designated position. After being fixed at the designated position for a period of time, the driving mechanism drives the moisture-absorbing plane to move to the next position.
  • the first area on the moisture absorption plane aligned with the moisture absorption channel is used to absorb moisture from the moist circulating air flow
  • the second area on the moisture absorption plane aligned with the regeneration channel is used for moisture removal.
  • the first area originally aligned with the moisture absorption channel is now aligned with the regeneration channel for moisture removal; the second area originally aligned with the regeneration channel is now aligned with the moisture absorption channel for moisture absorption.
  • the driving mechanism can also drive the moisture-absorbing plane to reciprocate in the horizontal direction in a continuous movement manner.
  • the first area on the moisture absorption plane aligned with the moisture absorption channel is used to absorb moisture from the moist circulating air flow
  • the second area on the moisture absorption plane aligned with the regeneration channel is used for moisture removal.
  • the moisture absorption plane reciprocates in the horizontal direction, which enables each area on the moisture absorption plane to periodically absorb and discharge moisture, thereby improving the efficiency of moisture absorption and discharge. Moreover, by alternately arranging multiple moisture absorption channels and multiple regeneration channels, it can be ensured that all positions on the moisture absorption plane are in a working state of moisture absorption or moisture removal, thereby improving moisture absorption and moisture removal efficiency.
  • the absorbent member may be fixedly positioned without movement.
  • the driving mechanism is used to position the moisture absorption channel and the regeneration channel alternately at the moisture absorption component, so that the moisture absorption component alternately absorbs and discharges moisture.
  • the driving mechanism can be implemented as a pipeline switching mechanism, for example, and the moisture absorption channel and the regeneration channel are alternately connected to the moisture absorption member by switching the pipeline.
  • a plurality of absorbent members may be provided, for example, two absorbent members, a first absorbent member and a second absorbent member.
  • the driving mechanism is used to position the first hygroscopic member and the second hygroscopic member alternately on the hygroscopic channel and the regeneration channel, so that the first hygroscopic member and the second hygroscopic member alternately absorb and discharge moisture.
  • multiple hygroscopic members are provided, the moisture absorption process of one hygroscopic member can be performed simultaneously with the moisture removal process of another hygroscopic member. Therefore, compared with the previous embodiment, the clothes drying efficiency can be improved.
  • the driving mechanism can be implemented as a pipeline switching mechanism, for example, and the moisture absorption channel and the regeneration channel are alternately communicated with the first moisture absorption member and the second moisture absorption member by switching the pipeline.
  • the first hygroscopic member and the second hygroscopic member can be fixedly arranged without movement, thereby avoiding damage to the hygroscopic member due to friction during movement, and there is no need to consider the dynamic sealing problem of the hygroscopic member during movement. .
  • first”, “second”, “third”, etc. are used for descriptive purposes only and cannot be understood as indicating or implying relative importance or implicitly indicating the quantity of indicated technical features. Thus, features defined as “first”, “second”, and “third” may explicitly or implicitly include one or more of these features.
  • “plurality” means two or more than two, unless otherwise expressly and specifically limited.
  • connection In this disclosure, unless otherwise explicitly stated and limited, the terms “installation”, “connection”, “connection”, “fixing” and other terms should be understood in a broad sense. For example, it can be a fixed connection or a detachable connection. , or integrated; it can be a mechanical connection, an electrical connection, or a communication; it can be a direct connection, or an indirect connection through an intermediate medium, or an internal connection between two elements or an interaction between two elements .
  • fixing and other terms should be understood in a broad sense. For example, it can be a fixed connection or a detachable connection. , or integrated; it can be a mechanical connection, an electrical connection, or a communication; it can be a direct connection, or an indirect connection through an intermediate medium, or an internal connection between two elements or an interaction between two elements .
  • the specific meanings of the above terms in this disclosure can be understood according to specific circumstances.
  • a first feature “on” or “below” a second feature may include the first and second features in direct contact, or may include the first and second features. Not in direct contact but through additional characteristic contact between them. Furthermore, the first feature “on”, “above” and “over” the second feature Including that the first feature is directly above and diagonally above the second feature, or simply means that the level of the first feature is higher than that of the second feature. “Below”, “under” and “under” the first feature is the second feature includes the first feature being directly below and diagonally below the second feature, or simply means that the first feature is less horizontally than the second feature.

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  • Engineering & Computer Science (AREA)
  • Textile Engineering (AREA)
  • Drying Of Gases (AREA)
  • Detail Structures Of Washing Machines And Dryers (AREA)
  • Drying Of Solid Materials (AREA)

Abstract

L'invention concerne un équipement de traitement de vêtements, comprenant : un espace de réception de vêtements (1100) utilisé pour recevoir des vêtements à traiter ; et un module de séchage (2000) utilisé pour sécher les vêtements. Le module de séchage (2000) comprend un élément d'absorption d'humidité (2200) ; l'élément d'absorption d'humidité comprend un disque rotatif d'absorption d'humidité (2201), un boîtier périphérique externe du disque rotatif d'absorption d'humidité, et un amortisseur circonférentiel ; le boîtier périphérique externe comprend un boîtier de serrage supérieur périphérique externe et un boîtier de serrage inférieur périphérique externe, et entoure la périphérie externe du disque rotatif d'absorption d'humidité ; l'amortisseur circonférentiel est disposé sur la périphérie externe du disque rotatif d'absorption d'humidité ou sur la paroi périphérique interne du boîtier périphérique externe ; une bague d'étanchéité est disposée au niveau du joint du boîtier de serrage supérieur périphérique externe et du boîtier de serrage inférieur périphérique externe, ou au niveau de la périphérie externe du boîtier de serrage supérieur périphérique externe séparé ou du boîtier de serrage inférieur périphérique externe séparé.
PCT/CN2023/072666 2022-08-31 2023-01-17 Équipement de traitement de vêtements WO2024045481A1 (fr)

Applications Claiming Priority (8)

Application Number Priority Date Filing Date Title
CN202222305979.6U CN218540129U (zh) 2021-09-01 2022-08-31 烘干模组及洗烘一体机
PCT/CN2022/116242 WO2023030394A1 (fr) 2021-09-01 2022-08-31 Appareil de traitement de linge
CN202222327022.1 2022-08-31
CNPCT/CN2022/116242 2022-08-31
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